ELECTRONIC CIRCUIT ARRANGEMENT FOR CURRENT DISTRIBUTION
An electronic circuit for uniform distribution of a current includes: a first MOSFET and a second MOSFET, wherein the first MOSFET and the second MOSFET are connected in parallel in order to distribute a current applied to an input terminal, the current flowing towards an output terminal of the electronic circuit, wherein the input terminal is respectively connected to a drain terminal of the first MOSFET and to a drain terminal of the second MOSFET; and a terminal for a control voltage, wherein the control voltage is applied to a gate terminal of the first MOSFET and to a gate terminal of the second MOSFET. The first MOSFET comprises a first resistor at the gate terminal of the first MOSFET, and the second MOSFET comprises a second resistor at the gate terminal of the second MOSFET.
This application claims benefit to German Patent Application No. DE 102021132970.1 and European Patent Application No. EP21214298.8, filed on Dec. 14, 2021, which are hereby incorporated by reference herein.
FIELDThe invention relates to an electronic circuit arrangement for current distribution. The invention also relates to a method for the uniform distribution of a current, as well as the use of the electronic circuit arrangement in a circuit for simulating a battery.
BACKGROUNDThere are many reasons for operating switching elements in parallel. One reason for a parallel connection, for example of transistors, is to achieve an improved cooling. A prerequisite for this is a uniform current distribution.
The basic circuits of parallel-connected transistors T1, T2, T3, T4 shown in
In an exemplary embodiment, the present invention provides an electronic circuit for uniform distribution of a current. The electronic circuit includes: a first MOSFET and a second MOSFET, wherein the first MOSFET and the second MOSFET are connected in parallel in order to distribute a current applied to an input terminal, the current flowing towards an output terminal of the electronic circuit, wherein the input terminal is respectively connected to a drain terminal of the first MOSFET and to a drain terminal of the second MOSFET; and a terminal for a control voltage, wherein the control voltage is applied to a gate terminal of the first MOSFET and to a gate terminal of the second MOSFET. The first MOSFET comprises a first resistor at the gate terminal of the first MOSFET, and the second MOSFET comprises a second resistor at the gate terminal of the second MOSFET. A source terminal of the first MOSFET is connected to a first source resistor and a source terminal of the second MOSFET is connected to a second source resistor. The first source resistor and the second source resistor are connected to the output terminal of the electronic circuit. The electronic circuit further comprises a first transistor and a second transistor. A base of the first transistor is connected to the source terminal of the first MOSFET, and a base of the second transistor is connected to the source terminal of the second MOSFET. An emitter terminal of the first transistor and an emitter terminal of the second transistor are connected to a current source. A collector terminal of the first transistor is connected to the gate terminal of the first MOSFET, and a collector terminal of the second transistor is connected to the gate terminal of the second MOSFET. The first transistor and the second transistor are configured to equalize the current through the first MOSFET and the current through the second MOSFET. The first transistor, in relation to the first MOSFET, and the second transistor, in relation to the second MOSFET, are arranged in the electronic circuit such that a first thermal coupling is established between the first MOSFET and the first transistor and a second thermal coupling is established between the second MOSFET and the second transistor. The first transistor and the second transistor are configured to adjust gate voltages of the first and second MOSFETs based on the first and second thermal couplings.
Subject matter of the present disclosure will be described in even greater detail below based on the exemplary figures. All features described and/or illustrated herein can be used alone or combined in different combinations. The features and advantages of various embodiments will become apparent by reading the following detailed description with reference to the attached drawings, which illustrate the following:
In an exemplary embodiment, the present invention provides an electronic circuit in which a plurality of MOSFETs are connected in parallel in order to, in the predominantly linear operation of the MOSFETs, increase the maximum power loss given a uniform distribution of the current. A type of use of the MOSFET in which the MOSFET is not driven to full output by a predefined gate-source voltage is referred to in technical circles, as also in the present context, as a “linear operation”, or also as a “linear operating mode”, of a MOSFET, or, in other words: In linear operation, for a given drain source current the MOSFET has a significantly higher N-th drain source voltage than—in particular given a MOSFET driven to full output—a minimum M-th drain source voltage that can be achieved for a given drain source current.
According to one aspect, the invention provides an electronic circuit arrangement for the uniform distribution of a current, having a first MOSFET and a second MOSFET, wherein the first MOSFET and the second MOSFET are connected in parallel in order to distribute a current applied to an input terminal, flowing towards an output terminal of the circuit arrangement; wherein the input terminal is respectively connected to the drain terminal of the first MOSFET and to the drain terminal of the second MOSFET; the electronic circuit arrangement comprises a terminal for a control voltage, wherein the control voltage is applied at the gate terminal of the first MOSFET and at the gate terminal of the second MOSFET; the first MOSFET comprises a first resistor at the gate terminal and the second MOSFET comprises a second resistor at the gate terminal; the source terminal of the first MOSFET is connected to a first source resistor and the source terminal of the second MOSFET is connected to a second source resistor, wherein the first source resistor and the second source resistor are connected to the output terminal of the circuit arrangement; characterized in that the circuit arrangement comprises a first transistor, wherein the base of the first transistor is connected to the source terminal of the first MOSFET; the circuit arrangement comprises a second transistor, wherein the base of the second transistor is connected to the source terminal of the second MOSFET, the emitter terminal of the first transistor and the emitter terminal of the second transistor are connected to a current source, the collector terminal of the first transistor is connected to the gate terminal of the first MOSFET, and the collector terminal of the second transistor is connected to the gate terminal of the second MOSFET; wherein the first transistor and the second transistor are configured so as to equalize the current through the first MOSFET and the current through the second MOSFET; the first transistor being arranged in relation to the first MOSFET and the second transistor being arranged in relation to the second MOSFET in the circuit arrangement such that a thermal coupling is established between the first MOSFET and the first transistor, likewise between the second MOSFET and the second transistor; wherein the first transistor and the second transistor are configured so as to adjust the gate voltages of the associated MOSFETs on the basis of the thermal coupling.
Given each MOSFET, a transistor is placed in such a way that the transistor is thermally coupled to the MOSFET. This has the advantage that the transistors also serve as temperature sensors, and not only the current but rather also the temperature between the parallel-connected MOSFETs is equalized. The circuit can thereby operate with very low source resistances, which reduces voltage loss in the state in which they are driven to full output. The maximum power loss given parallel-connected MOSFETs can hereby be increased.
In an advantageous embodiment of the electronic circuit arrangement, the first transistor comprises a first capacitor at the collector terminal and the second transistor comprises a second capacitor at the collector terminal. This has the advantage that the behavior at higher frequencies is improved.
In an advantageous embodiment of the electronic circuit arrangement, the first transistor comprises a first diode at the collector terminal and the second transistor comprises a second diode at the collector terminal. This has the advantage that a clamping of negative gate voltages is avoided. In the present context, the technical term “clamping” (derived from the word “to clamp”, meaning “arrest” or “lock” or “pinch” etc.) is to be understood as a process which can occur under predefined boundary conditions within the electronic circuit arrangement according to the invention, and wherein, at the first MOSFET and/or at the second MOSFET, the respective applied gate source voltage(s) is/are limited by control circuit(s) surrounding the MOSFET(s) to an extent unintended for the application according to the present disclosure.
In an advantageous embodiment of the electronic circuit arrangement, the first transistor comprises a third resistor at the emitter terminal and the second transistor comprises a fourth resistor at the emitter terminal. This has the advantage that the third resistance and the fourth resistance, somewhat linearizes the intrinsically exponential voltage-current characteristic of the base emitter path from the first transistor and the second transistor. The effectiveness of the correction can hereby be metered.
In an advantageous embodiment of the electronic circuit arrangement, the first transistor and the second transistor are bipolar transistors.
In an advantageous embodiment of the electronic circuit arrangement, the first MOSFET and the first transistor are thermally connected to one another via a thermally conductive medium, likewise the second MOSFET and the second transistor. The thermal coupling between the transistors can be ensured via a thermally conductive medium.
In an advantageous embodiment of the electronic circuit arrangement, the thermally conductive medium is a conductor trace on a common circuit board.
In an advantageous embodiment of the electronic circuit arrangement, more than two MOSFETs are connected in parallel. The present invention is not limited to two parallel-connected MOSFETs. A plurality of MOSFETs can be connected in parallel and, via the circuit arrangement according to the invention, the maximum power loss can be increased.
In an advantageous embodiment of the electronic circuit arrangement, the electronic circuit arrangement comprises a second electronic circuit arrangement, wherein the second electronic circuit arrangement corresponds to a mirroring of the first electronic circuit arrangement; wherein, in the mirrored second electronic circuit arrangement, the dopings of the transistors are reversed, the forward direction of diodes is reversed, and the voltages and currents are negated; wherein the first electronic circuit arrangement and the second electronic circuit arrangement comprises a common output terminal with common source resistors, or a common output terminal with separate source resistors for the first electronic circuit arrangement and the second electronic circuit arrangement.
According to a further aspect, the invention provides a method for the uniform distribution of a current, the method comprising the following steps:
providing an electronic circuit arrangement with features described above,
equalization of a current, applied at the input terminal and flowing towards an output terminal, via the first MOSFET and the second MOSFET, wherein the gate voltage of the first MOSFET is adjusted via the first transistor and the gate voltage of the second MOSFET is adjusted via the second transistor; wherein, via a thermal coupling between the first MOSFET and the first transistor and a thermal coupling between the second MOSFET and the second transistor, the current is additionally balanced in the event of an inequality of the temperature between the first MOSFET and the second MOSFET.
The invention also relates to the use of the previously described electronic circuit arrangement for the uniform distribution of a current and a temperature-dependent balancing of the current according to the method in a circuit for simulating a battery. The invention is helpful when several MOSFETs are connected in parallel, in order to increase the maximum power loss during linear operation. This can be used, for example, given a battery cell simulation board. A simulated battery cell can thereby both emit energy and receive it. In the latter event, this energy is converted into heat in the simulator.
All features explained in conjunction with individual embodiments of the invention can be provided in different combinations in the subject matter according to the invention in order to simultaneously realize their advantageous effects, even if they have been described with respect to different embodiments.
While subject matter of the present disclosure has been illustrated and described in detail in the drawings and foregoing description, such illustration and description are to be considered illustrative or exemplary and not restrictive. Any statement made herein characterizing the invention is also to be considered illustrative or exemplary and not restrictive as the invention is defined by the claims. It will be understood that changes and modifications may be made, by those of ordinary skill in the art, within the scope of the following claims, which may include any combination of features from different embodiments described above.
The terms used in the claims should be construed to have the broadest reasonable interpretation consistent with the foregoing description. For example, the use of the article “a” or “the” in introducing an element should not be interpreted as being exclusive of a plurality of elements. Likewise, the recitation of “or” should be interpreted as being inclusive, such that the recitation of “A or B” is not exclusive of “A and B,” unless it is clear from the context or the foregoing description that only one of A and B is intended. Further, the recitation of “at least one of A, B and C” should be interpreted as one or more of a group of elements consisting of A, B and C, and should not be interpreted as requiring at least one of each of the listed elements A, B and C, regardless of whether A, B and C are related as categories or otherwise. Moreover, the recitation of “A, B and/or C” or “at least one of A, B or C” should be interpreted as including any singular entity from the listed elements, e.g., A, any subset from the listed elements, e.g., A and B, or the entire list of elements A, B and C.
LIST OF REFERENCE SIGNS
- Electronic circuit arrangement 1
- Power source 2
- Second electronic circuit arrangement 3
- Current source, negative branch 4
- Current source, positive branch 5
- Input terminal 6
- Input terminal, negative branch 7
- Input terminal, positive branch 8
- Output terminal 9
- Control terminal 10
- Control terminal, negative branch 11
- Control terminal, positive branch 12
- Source terminal, first MOSFET 13
- Gate terminal, first MOSFET 14
- Drain terminal, first MOSFET 15
- Source terminal, second MOSFET 16
- Gate terminal, second MOSFET 17
- Drain terminal, second MOSFET 18
- Thermal coupling 19
- Base of first transistor 20
- Base of second transistor 21
- Emitter terminal, first transistor 22
- Emitter terminal, second transistor 23
- Collector terminal, first transistor 24
- Collector terminal, second transistor 25
- Resistor R1
- Resistor R2
- Bipolar transistor T1
- Bipolar transistor T2
- Resistor R3
- Resistor R4
- MOSFET T3
- MOSFET T4
- First resistor R11
- Third resistor R12
- Source resistor R13
- Resistor R14
- Resistor R15
- Second resistor R21
- Fourth resistor R22
- Source resistor R23
- Resistor R24
- Resistor R25
- Diode D11
- Diode D12
- Diode D21
- Diode D22
- Capacitor C11
- Capacitor C12
- Capacitor C21
- Capacitor C22
- First MOSFET T11
- First bipolar transistor T12
- Third MOSFET T13
- Third bipolar transistor T14
- Fourth bipolar transistor T15
- Fourth MOSFET T16
- Second MOSFET T21
- Second bipolar transistor T22
- Providing an electronic circuit arrangement S1
- Equalizing a current S2
- Balancing a temperature S3
Claims
1. An electronic circuit for uniform distribution of a current, comprising:
- a first MOSFET and a second MOSFET, wherein the first MOSFET and the second MOSFET are connected in parallel in order to distribute a current applied to an input terminal, the current flowing towards an output terminal of the electronic circuit, wherein the input terminal is respectively connected to a drain terminal of the first MOSFET and to a drain terminal of the second MOSFET; and
- a terminal for a control voltage, wherein the control voltage is applied to a gate terminal of the first MOSFET and to a gate terminal of the second MOSFET;
- wherein the first MOSFET comprises a first resistor at the gate terminal of the first MOSFET, and the second MOSFET comprises a second resistor at the gate terminal of the second MOSFET;
- wherein a source terminal of the first MOSFET is connected to a first source resistor and a source terminal of the second MOSFET is connected to a second source resistor, wherein the first source resistor and the second source resistor are connected to the output terminal of the electronic circuit;
- wherein the electronic circuit further comprises a first transistor and a second transistor, wherein a base of the first transistor is connected to the source terminal of the first MOSFET, and a base of the second transistor is connected to the source terminal of the second MOSFET;
- wherein an emitter terminal of the first transistor and an emitter terminal of the second transistor are connected to a current source;
- wherein a collector terminal of the first transistor is connected to the gate terminal of the first MOSFET, and a collector terminal of the second transistor is connected to the gate terminal of the second MOSFET;
- wherein the first transistor and the second transistor are configured to equalize the current through the first MOSFET and the current through the second MOSFET;
- wherein the first transistor, in relation to the first MOSFET, and the second transistor, in relation to the second MOSFET, are arranged in the electronic circuit such that a first thermal coupling is established between the first MOSFET and the first transistor and a second thermal coupling is established between the second MOSFET and the second transistor;
- wherein the first transistor and the second transistor are configured to adjust gate voltages of the first and second MOSFETs based on the first and second thermal couplings.
2. The electronic circuit according to claim 1, wherein the first transistor at its collector terminal comprises a first capacitor, and the second transistor at its collector terminal comprises a second capacitor.
3. The electronic circuit according to claim 1, wherein the first transistor at its collector terminal comprises a first diode, and the second transistor at its collector terminal comprises a second diode.
4. The electronic circuit according to claim 1, wherein the first transistor at its emitter terminal comprises a third resistor, and the second transistor at its emitter terminal comprises a fourth resistor.
5. The electronic circuit according to claim 1, wherein the first transistor and the second transistor are bipolar transistors.
6. The electronic circuit according to claim 1, wherein the first MOSFET and the first transistor are thermally connected to one another via a first thermally conductive medium, and wherein the second MOSFET and the second transistor are thermally connected to one another via a second thermally conductive medium.
7. The electronic circuit according to claim 6, wherein the first and second thermally conductive mediums are conductor traces of a common circuit board.
8. The electronic circuit according to claim 1, wherein more than two MOSFETs are connected in parallel.
9. A system, comprising a first electronic circuit and a second electronic circuit, wherein the first electronic circuit comprises:
- a first MOSFET and a second MOSFET, wherein the first MOSFET and the second MOSFET are connected in parallel in order to distribute a current applied to an input terminal, the current flowing towards an output terminal of the electronic circuit, wherein the input terminal is respectively connected to a drain terminal of the first MOSFET and to a drain terminal of the second MOSFET; and
- a terminal for a control voltage, wherein the control voltage is applied to a gate terminal of the first MOSFET and to a gate terminal of the second MOSFET;
- wherein the first MOSFET comprises a first resistor at the gate terminal of the first MOSFET, and the second MOSFET comprises a second resistor at the gate terminal of the second MOSFET;
- wherein a source terminal of the first MOSFET is connected to a first source resistor and a source terminal of the second MOSFET is connected to a second source resistor, wherein the first source resistor and the second source resistor are connected to the output terminal of the electronic circuit;
- wherein the electronic circuit further comprises a first transistor and a second transistor, wherein a base of the first transistor is connected to the source terminal of the first MOSFET, and a base of the second transistor is connected to the source terminal of the second MOSFET;
- wherein an emitter terminal of the first transistor and an emitter terminal of the second transistor are connected to a current source;
- wherein a collector terminal of the first transistor is connected to the gate terminal of the first MOSFET, and a collector terminal of the second transistor is connected to the gate terminal of the second MOSFET;
- wherein the first transistor and the second transistor are configured to equalize the current through the first MOSFET and the current through the second MOSFET;
- wherein the first transistor, in relation to the first MOSFET, and the second transistor, in relation to the second MOSFET, are arranged in the electronic circuit such that a first thermal coupling is established between the first MOSFET and the first transistor and a second thermal coupling is established between the second MOSFET and the second transistor;
- wherein the first transistor and the second transistor are configured to adjust gate voltages of the first and second MOSFETs based on the first and second thermal couplings;
- wherein the second electronic circuit corresponds to a mirroring of the first electronic circuit, wherein, in the mirrored second electronic circuit arrangement, the dopings of the transistors are reversed, the forward directions of diodes are reversed, and the voltages and currents are negated;
- wherein the first electronic circuit and the second electronic circuit have a common output terminal with common source resistors, or a common output terminal with separate source resistors for the first electronic circuit and the second electronic circuit.
10. A method for uniform distribution of a current, the method comprising:
- providing an electronic circuit;
- equalizing a current applied at an input terminal, the current flowing towards an output terminal, via a first MOSFET and a second MOSFET, wherein a gate voltage of the first MOSFET is adjusted via a first transistor, and a gate voltage of the second MOSFET is adjusted via a second transistor;
- wherein, via a first thermal coupling between the first MOSFET and the first transistor and a second thermal coupling between the second MOSFET and the second transistor, the current is balanced in the event of an inequality of temperature between the first MOSFET and the second MOSFET.
Type: Application
Filed: Dec 14, 2022
Publication Date: Jun 22, 2023
Patent Grant number: 12119812
Inventor: Paul Gruber (Paderborn)
Application Number: 18/065,637